首页> 外文会议>Complex, Intelligent and Software Intensive Systems (CISIS), 2010 >Modeling of Stress-induced Regulatory Cascades Involving Transcription Factor Dimers
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Modeling of Stress-induced Regulatory Cascades Involving Transcription Factor Dimers

机译:涉及转录因子二聚体的应力诱导调控级联的建模。

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Regulatory cascades consisting of stress-induced gene modules and their transcriptional regulators were recently identified and quantitatively modeled using Artificial Neural Networks (ANNs). Here, we extent our approach to account for regulators that consist of transcription factor dimers. The latter are frequently missed by module-finding tools since the expression profile of one of the dimers is typically un-altered while the profile of the second dimer changes significantly during the stress response. We identify two modules of stress-associated genes that are regulated by transcription factor dimers and show that ANN modeling can be used to accurately predict the expression of all genes in these modules. We also find that prediction accuracy is dependent on the specific stress category, in agreement with experimental studies where constitutively expressed transcription factors exert different regulatory actions upon different exposures to stressful stimuli. Overall, we show that TF dimerization is an important attribute of the transcriptional network regulation, which is frequently ignored by module finding tools, and can lead to the identification of important biological cascades whose regulatory action can be quantitatively simulated with ANNs.
机译:最近,使用人工神经网络(ANN)识别并定量建模了由应激诱导的基因模块及其转录调控因子组成的调控级联反应。在这里,我们扩展了我们的方法来解释由转录因子二聚体组成的调节子。后者经常被模块查找工具遗漏,因为其中一个二聚体的表达概况通常不会改变,而第二个二聚体的概况在应激反应期间发生显着变化。我们确定了由转录因子二聚体调节的与压力相关的基因的两个模块,并表明ANN建模可用于准确预测这些模块中所有基因的表达。我们还发现,预测准确性取决于特定的压力类别,这与实验性研究一致,在实验性研究中,组成型表达的转录因子在不同的压力刺激下发挥不同的调节作用。总体而言,我们表明TF二聚化是转录网络调节的重要属性,模块查找工具经常忽略它,并且可以导致识别重要的生物级联,其级联作用可以用ANNs进行定量模拟。

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